cis Determinants of Promoter Threshold and Activation Timescale

Although the relationship between DNA cis-regulatory sequences and gene expression has been extensively studied at steady state, how cis-regulatory sequences affect the dynamics of gene induction is not known. The dynamics of gene induction can be described by the promoter activation timescale (AcTi...

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Main Authors: Anders S. Hansen, Erin K. O’Shea
Format: Article
Language:English
Published: Elsevier 2015-08-01
Series:Cell Reports
Online Access:http://www.sciencedirect.com/science/article/pii/S2211124715007950
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spelling doaj-22525c31e90c41d8a8537165dd48b7312020-11-25T00:23:26ZengElsevierCell Reports2211-12472015-08-011281226123310.1016/j.celrep.2015.07.035cis Determinants of Promoter Threshold and Activation TimescaleAnders S. Hansen0Erin K. O’Shea1Department of Chemistry and Chemical Biology, Harvard University, 12 Oxford Street, Cambridge, MA 02138, USADepartment of Chemistry and Chemical Biology, Harvard University, 12 Oxford Street, Cambridge, MA 02138, USAAlthough the relationship between DNA cis-regulatory sequences and gene expression has been extensively studied at steady state, how cis-regulatory sequences affect the dynamics of gene induction is not known. The dynamics of gene induction can be described by the promoter activation timescale (AcTime) and amplitude threshold (AmpThr). Combining high-throughput microfluidics with quantitative time-lapse microscopy, we control the activation dynamics of the budding yeast transcription factor, Msn2, and reveal how cis-regulatory motifs in 20 promoter variants of the Msn2-target-gene SIP18 affect AcTime and AmpThr. By modulating Msn2 binding sites, we can decouple AmpThr from AcTime and switch the SIP18 promoter class from high AmpThr and slow AcTime to low AmpThr and either fast or slow AcTime. We present a model that quantitatively explains gene-induction dynamics on the basis of the Msn2-binding-site number, TATA box location, and promoter nucleosome organization. Overall, we elucidate the cis-regulatory logic underlying promoter decoding of TF dynamics.http://www.sciencedirect.com/science/article/pii/S2211124715007950
collection DOAJ
language English
format Article
sources DOAJ
author Anders S. Hansen
Erin K. O’Shea
spellingShingle Anders S. Hansen
Erin K. O’Shea
cis Determinants of Promoter Threshold and Activation Timescale
Cell Reports
author_facet Anders S. Hansen
Erin K. O’Shea
author_sort Anders S. Hansen
title cis Determinants of Promoter Threshold and Activation Timescale
title_short cis Determinants of Promoter Threshold and Activation Timescale
title_full cis Determinants of Promoter Threshold and Activation Timescale
title_fullStr cis Determinants of Promoter Threshold and Activation Timescale
title_full_unstemmed cis Determinants of Promoter Threshold and Activation Timescale
title_sort cis determinants of promoter threshold and activation timescale
publisher Elsevier
series Cell Reports
issn 2211-1247
publishDate 2015-08-01
description Although the relationship between DNA cis-regulatory sequences and gene expression has been extensively studied at steady state, how cis-regulatory sequences affect the dynamics of gene induction is not known. The dynamics of gene induction can be described by the promoter activation timescale (AcTime) and amplitude threshold (AmpThr). Combining high-throughput microfluidics with quantitative time-lapse microscopy, we control the activation dynamics of the budding yeast transcription factor, Msn2, and reveal how cis-regulatory motifs in 20 promoter variants of the Msn2-target-gene SIP18 affect AcTime and AmpThr. By modulating Msn2 binding sites, we can decouple AmpThr from AcTime and switch the SIP18 promoter class from high AmpThr and slow AcTime to low AmpThr and either fast or slow AcTime. We present a model that quantitatively explains gene-induction dynamics on the basis of the Msn2-binding-site number, TATA box location, and promoter nucleosome organization. Overall, we elucidate the cis-regulatory logic underlying promoter decoding of TF dynamics.
url http://www.sciencedirect.com/science/article/pii/S2211124715007950
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